Review Articles
Vol. 13 No. sp5 (2026): Recent Advances in Agriculture
Bioconversion of agro-industrial effluent sludge into bio-fertilisers: A sustainable waste management approach
Department of Environmental Science, Tamil Nadu Agricultural University, Coimbatore 641 003, Tamil Nadu, India
Department of Environmental Science, Tamil Nadu Agricultural University, Coimbatore 641 003, Tamil Nadu, India
Department of Environmental Science, Tamil Nadu Agricultural University, Coimbatore 641 003, Tamil Nadu, India
Department of Soil Science and Agricultural Chemistry, Tamil Nadu Agricultural University, Coimbatore 641 003, Tamil Nadu, India
Centre for Water and Geospatial Studies, Tamil Nadu Agricultural University, Coimbatore 641 003, Tamil Nadu, India
Department of Environmental Science, Tamil Nadu Agricultural University, Coimbatore 641 003, Tamil Nadu, India
Department of Soil Science and Agricultural Chemistry, Tamil Nadu Agricultural University, Coimbatore 641 003, Tamil Nadu, India
Abstract
The rapid growth of agro-industrial activities has led to the generation of substantial quantities of effluent sludge, posing serious environmental and waste management concerns. Despite these challenges, agro-industrial sludge contains significant amounts of organic matter and plant nutrients, making it a valuable resource for agricultural applications when properly treated. This review explores the conversion of agro-industrial effluent sludge into biofertilisers as a sustainable strategy for waste valorisation and nutrient recycling within a circular bioeconomy framework. It discusses the characteristics of sludge, associated environmental risks and the treatment processes required to ensure safe agricultural use. Major bioconversion approaches, including composting, vermicomposting, microbial inoculation, anaerobic digestion and thermochemical methods, are critically evaluated. The review also highlights the role of beneficial microorganisms in nutrient transformation and recovery, as well as emerging technologies such as biochar-based fertilisers, electrochemical nutrient recovery systems and integrated sludge biorefineries. Findings from laboratory and field studies demonstrate that sludge-derived biofertilisers can enhance soil fertility, improve microbial activity, increase nutrient availability and support crop productivity while reducing dependence on synthetic fertilisers. However, issues related to heavy metals, organic contaminants, pathogen removal, product quality and regulatory compliance remain important challenges. Overall, the bioconversion of agro-industrial sludge into biofertilisers offers a promising pathway for sustainable waste management, resource recovery, environmental protection and resilient agricultural development.
References
- 1. Engida T, Mekonnen A, Wu J, Xu D, Wu Z. Review paper on beverage agro-industrial wastewater treatment plant bio-sludge for fertilizer potential in Ethiopia. Applied Ecology and Environmental Research. 2020;18(1):33–57. https://doi.org/10.15666/aeer/1801_033057
- 2. Hidalgo D, Martín-Marroquín J, Corona F, Verdugo F. Waste-derived fertilizers: conversion technologies, circular bioeconomy perspectives and agronomic value. Agronomy. 2025;15(9):2167. https://doi.org/10.3390/agronomy15092167
- 3. Anisimova T. Agroecological assessment of fertilizers obtained on the basis of bioconversion of sewage sludge. Agricultural Chemistry. 2025;9:40. https://doi.org/10.7868/S3034496425090051
- 4. Aryanfar Y, García Alcaraz JL, Keçebaş A, Fernandez JB, Arslan B, Ilbas M, et al. Transforming food industrial sludge into sustainable resources: innovations in waste management and renewable energy recovery. Business Strategy and the Environment. 2025;34(3):3672–700. https://doi.org/10.1002/bse.4170
- 5. Pereira VV, Lyra MRCC, Netto AM, Rodrigues SSFB. Characterization of biological sludge waste from industrial wastewater treatment plant for soil reuse purposes. Revista de Gestão Social e Ambiental. 2025;19(1):1. https://doi.org/10.24857/rgsa.v19n1-014
- 6. Lee L, Wu T, Shak K, Lim S, Ng K, Nguyen M, et al. Sustainable approach to biotransform industrial sludge into organic fertilizer via vermicomposting: a mini-review. Journal of Chemical Technology & Biotechnology. 2018;93(4):925–35. https://doi.org/10.1002/jctb.5490
- 7. N JMK, Saeid A. An insight into microbial inoculants for bioconversion of waste biomass into sustainable "bio-organic" fertilizers: a bibliometric analysis and systematic literature review. International Journal of Molecular Sciences. 2022;23(21):13049. https://doi.org/10.3390/ijms232113049
- 8. Upadhyay S, Singh G, Rani N, Rajput V, Seth CS, Dwivedi P, et al. Transforming bio-waste into value-added products mediated microbes for enhancing soil health and crop production: perspective views on circular economy. Environmental Technology & Innovation. 2024;34:103573. https://doi.org/10.1016/j.eti.2024.103573
- 9. Jagaba A, Kutty S, Abubakar S, Birniwa A, Lawal I, Umaru I, et al. Synthesis, characterization and performance evaluation of hybrid waste sludge biochar for COD and color removal from agro-industrial effluent. Separations. 2022;9(9):258. https://doi.org/10.3390/separations9090258
- 10. Zheng Q, Ni L. Analysis of the effect of intrinsic sludge properties on sludge drying characteristics from both sludge composition and type scales. Waste Management. 2024;183:278–89. https://doi.org/10.1016/j.wasman.2024.05.020
- 11. Degu A, Shiferaw T, Feyisa T. Assessment of physio-chemical properties of Bahir Dar textile sludge and its impact on the growth of Lactuca sativa and soil nutrient improvement. Journal of Tropical Crop Science. 2025;12(1):25–36. https://doi.org/10.29244/jtcs.12.01.25-36
- 12. Valdés MÁS, Disla JS, Gambuzzi E, Martínez GC. Innovative circular biowaste valorisation—state of the art and guidance for cities and regions. Sustainability. 2024;16(20):8963. https://doi.org/10.3390/su16208963
- 13. Shi W, Healy M, Ashekuzzaman S, Daly K, Leahy J, Fenton O. Dairy processing sludge and co-products: a review of present and future re-use pathways in agriculture. Journal of Cleaner Production. 2021;314:128035. https://doi.org/10.1016/j.jclepro.2021.128035
- 14. Ramakrishna G, Patil B. Characterisation of faecal sludge from different nature-based treatment processes for agricultural application. Sustainability. 2025;17(13):5683. https://doi.org/10.3390/su17135683
- 15. Cwalina P, Obidziński S, Sienkiewicz A, Kowczyk-Sadowy M, Piekut J, Bagińska E, et al. Production and quality assessment of fertilizer pellets from compost with sewage sludge ash (SSA) addition. Materials. 2025;18(5):1145. https://doi.org/10.3390/ma18051145
- 16. Espinosa BG, Currás AC, Alonso J. Composición de lodos generados en la depuración anaerobia de residuales de la industria alimentaria. I: Macronutrientes. Alimentaria. 2002;37(329):129–32. https://doi.org/10.1007/s12272-014-0335-3
- 17. Eliyan C, McConville J, Zurbrügg C, Koottatep T, Sothea K, Vinnerås B. Heavy metal contamination of faecal sludge for agricultural production in Phnom Penh, Cambodia. Journal of Environmental Management. 2023;349:119436. https://doi.org/10.1016/j.jenvman.2023.119436
- 18. Balkrishna A, Ghosh S, Kaushik I, Arya V, Joshi D, Semwal D, et al. Sequential distribution, potential sources and health risk assessment of persistent toxic substances in sewage sludge used as organic fertilizer in Indo-Gangetic region. Environmental Science and Pollution Research. 2025;32(5):2324–58. https://doi.org/10.1007/s11356-024-35706-4
- 19. Janaszek A, Kowalik R. Analysis of heavy metal contaminants and mobility in sewage sludge-soil mixtures for sustainable agricultural practices. Water. 2023;15(22):3992. https://doi.org/10.3390/w15223992
- 20. Van Dongen K, Spaans G, Foekema EM, Van Groenestijn J, Kootstra A, Brouwer MSM, et al. Towards circular food production systems: identification of chemical, microbial and physical food safety hazards in municipal sludge and excess aerobic biomass of the food industry. Environment International. 2025;202:109624. https://doi.org/10.1016/j.envint.2025.109624
- 21. Izydorczyk G, Mikula K, Skrzypczak D, Trzaska K, Moustakas K, Witek-Krowiak A, et al. Agricultural and non-agricultural directions of bio-based sewage sludge valorization by chemical conditioning. Environmental Science and Pollution Research. 2021;28:47725–40. https://doi.org/10.1007/s11356-021-15293-4
- 22. Wang M-H, Chen C-F, Ju Y, Tsai M, Chen C-W, Dong C. Distribution and environmental risk assessment of trace metals in sludge from multiple sources in Taiwan. Journal of Environmental Science and Health Part A. 2021;56:481–91. https://doi.org/10.1080/10934529.2021.1887687
- 23. Birendar AKS, Kuppusamy S, Sellappa K, Pandian GK. Physico-chemical, nutrient and contaminant profile of sewage sludge from sewage treatment plants in Tamil Nadu, India: implications for agricultural reuse. Environmental Monitoring and Assessment. 2025;197(11):1235. https://doi.org/10.1007/s10661-025-14685-0
- 24. Khelladi M, Abaidia M, Debab A. Utilizing industrial waste for the microbiological decontamination of sewage sludge. Engineering, Technology & Applied Science Research. 2025;15(4):24752–7. https://doi.org/10.48084/etasr.11593
- 25. Hoang S, Bolan N, Madhubashani A, Vithanage M, Perera V, Wijesekara H, et al. Treatment processes to eliminate potential environmental hazards and restore agronomic value of sewage sludge: a review. Environmental Pollution. 2021;293:118564. https://doi.org/10.1016/j.envpol.2021.118564
- 26. Liang X, Wen X, Yang H, Lu H, Wang A, Liu S, et al. Incorporating microbial inoculants to reduce nitrogen loss during sludge composting by suppressing denitrification and promoting ammonia assimilation. Science of the Total Environment. 2024;915:170000. https://doi.org/10.1016/j.scitotenv.2024.170000
- 27. Uddin MN, Hartog C, Murray E, Loveless J, Roberson L, Aslan A, et al. Advancing circular bioeconomy through a systems-level assessment of food waste and industrial sludge codigestion. ACS Environmental Au. 2025;5(5):479–89. https://doi.org/10.1021/acsenvironau.5c00049
- 28. Romano P, Zuffranieri A, Di Giacomo G. Energy valorization and resource recovery from municipal sewage sludge: evolution, recent advances and future prospects. Energies. 2025;18(13):3442. https://doi.org/10.3390/en18133442
- 29. Lucia C, Badalucco L, Corsino S, Galati A, Iovino M, Muscarella S, et al. Management and valorisation of sewage sludge to foster the circular economy in the agricultural sector. Discover Soil. 2025;2(1). https://doi.org/10.1007/s44378-025-00105-9
- 30. Villagrán-Zaccardi Y, Carreño F, Granheim L, De Gea AE, Minke US, Butera S, et al. Valorisation of aggregate-washing sludges in innovative applications in construction. Materials. 2024;17(19):4892. https://doi.org/10.3390/ma17194892
- 31. Fernando-Foncillas C, Varrone C. Potential of the sewage sludge valorization in Scandinavia by co-digestion with other organic wastes: a techno-economic assessment. Journal of Cleaner Production. 2021;324:129239. https://doi.org/10.1016/j.jclepro.2021.129239
- 32. Nguyen MD, Thomas M, Surapaneni A, Moon E, Milne N. Beneficial reuse of water treatment sludge in the context of circular economy. Environmental Technology & Innovation. 2022;28:102651. https://doi.org/10.1016/j.eti.2022.102651
- 33. Kathi S, Singh S, Yadav R, Singh A, Mahmoud A. Wastewater and sludge valorisation: a novel approach for treatment and resource recovery to achieve circular economy concept. Frontiers in Chemical Engineering. 2023;5. https://doi.org/10.3389/fceng.2023.1129783
- 34. Kiselev A, Magaril E, Magaril R, Panepinto D, Ravina M, Zanetti M. Towards circular economy: evaluation of sewage sludge biogas solutions. Resources. 2019;8(2):91. https://doi.org/10.3390/resources8020091
- 35. Kowalski Z, Makara A, Kulczycka J, Generowicz A, Kwaśnicki P, Ciuła J, et al. Conversion of sewage sludge into biofuels via different pathways and their use in agriculture: a comprehensive review. Energies. 2024;17(6):1383. https://doi.org/10.3390/en17061383
- 36. Camargo F, Sakamoto I, Delforno T, Midoux C, Duarte ICS, Silva E, et al. Microbial and functional characterization of granulated sludge from full-scale UASB thermophilic reactor applied to sugarcane vinasse treatment. Environmental Technology. 2022;44(21):3141–60. https://doi.org/10.1080/09593330.2022.2052361
- 37. Remmas N. Biotreatment potential and microbial communities in aerobic bioreactor systems treating agro-industrial wastewaters. Processes. 2022;10(10):1913. https://doi.org/10.3390/pr10101913
- 38. Zhou M, Zhu W, Zheng Z, Wu H, Cong H, Feng S. Material conversion, microbial community composition and metabolic functional succession during algal sludge composting. Water. 2025;17(19):2904. https://doi.org/10.3390/w17192904
- 39. Gulsunoglu-Konuskan Z, Kilic-Akyilmaz M. Microbial bioconversion of phenolic compounds in agro-industrial wastes: a review of mechanisms and effective factors. Journal of Agricultural and Food Chemistry. 2022;70(23):6901–10. https://doi.org/10.1021/acs.jafc.1c06888
- 40. Cheng X, Wei Z, Cao W, Feng Q, Liu J, Wu Y, et al. Untangling the interplay of dissolved organic matter variation with microbial symbiotic network in sludge anaerobic fermentation triggered by various pretreatments. Water Research. 2024;260:121930. https://doi.org/10.1016/j.watres.2024.121930
- 41. Bouhia Y, Hafidi M, Ouhdouch Y, Boukhari MEME, Fels E, Zeroual Y, et al. Microbial community succession and organic pollutants removal during olive mill waste sludge and green waste co-composting. Frontiers in Microbiology. 2022;12:814553. https://doi.org/10.3389/fmicb.2021.814553
- 42. Sui M, Miao K, Tang L, Zhao J, Jin C, Zhao Y, et al. Synergistic mechanisms of compound thermophilic bacteria on waste sludge hydrolysis and reduction: extracellular polymers degradation, enzyme activity and microbial community changes. Science of the Total Environment. 2025;999:180311. https://doi.org/10.1016/j.scitotenv.2025.180311
- 43. Pundir H, Balu R, Shah P, Satish R. Role of crude enzymes and microbial consortia in the degradation of organic matter. World Journal of Biology Pharmacy and Health Sciences. 2025;24(1):287–98. https://doi.org/10.30574/wjbphs.2025.24.1.0914
- 44. Qi M, Liang B, Zhang L, Xiao D, Yan L, Dong W, et al. Microbial interactions drive the complete catabolism of the antibiotic sulfamethoxazole in activated sludge microbiomes. Environmental Science & Technology. 2021;55(5):3270–82. https://doi.org/10.1021/acs.est.0c06687
- 45. Zhang T, Zhang H. Microbial consortia are needed to degrade soil pollutants. Microorganisms. 2022;10(2):261. https://doi.org/10.3390/microorganisms10020261
- 46. Godzieba M, Żubrowska-Sudoł M, Walczak J, Ciesielski S. Development of microbial communities in biofilm and activated sludge in a hybrid reactor. Scientific Reports. 2022;12(1):12558. https://doi.org/10.1038/s41598-022-16570-z
- 47. Datta R. Enzymatic degradation of cellulose in soil: a review. Heliyon. 2024;10(1):e24022. https://doi.org/10.1016/j.heliyon.2024.e24022
- 48. Khan S, Ray A, Bhakta J, Lahiri S. Bacterial multi-enzyme signature assessment for wastewater reclamation and ecological resilience in tropical waste stabilization pond. International Journal of Environmental Science and Technology. 2024;21(3):3201–8. https://doi.org/10.1007/s13762-023-05177-0
- 49. Daunoras J, Kačergius A, Gudiukaitė R. Role of soil microbiota enzymes in soil health and activity changes depending on climate change and the type of soil ecosystem. Biology. 2024;13(2):85. https://doi.org/10.3390/biology13020085
- 50. Leng Y, Soares A. The mechanisms of struvite biomineralization in municipal wastewater. Science of the Total Environment. 2021;799:149261. https://doi.org/10.1016/j.scitotenv.2021.149261
- 51. Xiong W, Wang S, Jin Y, Wu Z, Liu D, Su H. Insights into nitrogen and phosphorus metabolic mechanisms of algal-bacterial aerobic granular sludge via metagenomics: performance, microbial community and functional genes. Bioresource Technology. 2022;369:128442. https://doi.org/10.1016/j.biortech.2022.128442
- 52. Krutiakova V, Pyliak N, Nikipelova O. Optimized technology of obtaining biofertilizers based on sewage sludge. Visnyk Agrarnoi Nauky. 2022;100(1):50–6. https://doi.org/10.31073/agrovisnyk202201-07
- 53. Gogoi M, Biswas T, Biswal P, Saha T, Modak A, Gantayet L, et al. A novel strategy for microbial conversion of dairy wastewater into biofertilizer. Journal of Cleaner Production. 2021;293:126051. https://doi.org/10.1016/j.jclepro.2021.126051
- 54. Álvarez-Montero X, Mercado-Reyes I, Castillo-Chamba W, Santos-Ordóñez E. Harnessing dairy wastewater to cultivate Scenedesmus sp. for biofertilizer applications in Phaseolus vulgaris L.: a sustainable agro-biotechnological approach. Frontiers in Plant Science. 2025;16:1568057. https://doi.org/10.3389/fpls.2025.1568057
- 55. Martínez LM, Mamani CC, Merino AR, González-Sánchez A andia JM. Synergistic bioremediation of agro-industrial wastewater by microalgae and activated sludge for biofertilizer production: influence of photoperiod and inoculation ratio. Environmental Technology. 2025;46(26):5297–312. https://doi.org/10.1080/09593330.2025.2534199
- 56. Azeem B. Converting wastewater sludge into slow-release fertilizers via biochar and encapsulation technologies. Applied Sciences. 2025;15(20):10954. https://doi.org/10.3390/app152010954
- 57. Botte G, Donneys-Victoria D, Alvarez-Pugliese C, Adjei J, Sahin S, Wilson N, et al. Innovative approach to sustainable fertilizer production: leveraging electrically assisted conversion of sewage sludge for nutrient recovery. ACS Omega. 2024;9:49692–706. https://doi.org/10.1021/acsomega.4c07926
- 58. Hassan M, Senko S, Villa A, Grafova E, Pappinen A, Kuittinen S. Techno-economic evaluation of biofertilizer production using wastewater biosolids: case study from municipal wastewater treatment plants in northwest region of Russia. Journal of Material Cycles and Waste Management. 2023;25:3380–94. https://doi.org/10.1007/s10163-023-01766-w
- 59. Zainudin M, Zulkarnain A, Azmi AS, Muniandy S, Sakai K, Shirai Y, et al. Enhancement of agro-industrial waste composting process via microbial inoculation: a brief review. Agronomy. 2022;12(1):198. https://doi.org/10.3390/agronomy12010198
- 60. Zhang Z, Hu M, Bian B, Yang Z, Yang W, Zhang L. Full-scale thermophilic aerobic co-composting of blue-green algae sludge with livestock faeces and straw. Science of the Total Environment. 2020;753:142079. https://doi.org/10.1016/j.scitotenv.2020.142079
- 61. Ezemagu I, Ejimofor M, Menkiti M, Diyoke C. Biofertilizer production via composting of digestate obtained from anaerobic digestion of post-biocoagulation sludge blended with sawdust: physicochemical characterization and kinetic study. Environmental Challenges. 2021;5:100288. https://doi.org/10.1016/j.envc.2021.100288
- 62. Nigussie A, Dume B, Ahmed M, Mamuye M, Ambaw G, Berhiun G, et al. Effect of microbial inoculation on nutrient turnover and lignocellulose degradation during composting: a meta-analysis. Waste Management. 2021;125:220–34. https://doi.org/10.1016/j.wasman.2021.02.043
- 63. Lin B, Zhang Y, Hao Y, Lu M, Xiang H, Ding D, et al. Insights into nitrogen metabolism and humification process in aerobic composting facilitated by microbial inoculation. Environmental Research. 2025;269:120894. https://doi.org/10.1016/j.envres.2025.120894
- 64. Ahmed T, Noman M, Qi Y, Shahid M, Hussain S, Masood HA, et al. Fertilization of microbial composts: a technology for improving stress resilience in plants. Plants. 2023;12(20):3550. https://doi.org/10.3390/plants12203550
- 65. Van Quang T, Bao ND, Xuan NTM. Microbial fertilizer from co-composted sludge using Mishimax-50 system. University of Danang Journal of Science and Technology. 2025:86–91. https://doi.org/10.31130/ud-jst.2025.23(9d).570e
- 66. Li L, Li H, Tong L, Lv Y. Sustainable agriculture practices: utilizing composted sludge fertilizer for improved crop yield and soil health. Agronomy. 2024;14(4):756. https://doi.org/10.3390/agronomy14040756
- 67. Chen Z, Li Y, Peng Y, Mironov V, Chen J, Jin H-X, et al. Feasibility of sewage sludge and food waste aerobic co-composting: physicochemical properties, microbial community structures and contradiction between microbial metabolic activity and safety risks. Science of the Total Environment. 2022;825:154047. https://doi.org/10.1016/j.scitotenv.2022.154047
- 68. Demeke M, Gabbiye N. Organic biofertilizer from brewery wastewater sludges via aerobic composting process. In: Sustainable Organic Agriculture for Developing Agribusiness. 2020. p. 3–15. https://doi.org/10.1007/978-3-030-43690-2_1
- 69. Manea E, Bumbac C. Sludge composting—is this a viable solution for wastewater sludge management? Water. 2024;16(16):2241. https://doi.org/10.3390/w16162241
- 70. Greff B, Szigeti J, Nagy Á, Lakatos E, Varga L. Influence of microbial inoculants on co-composting of lignocellulosic crop residues with farm animal manure: a review. Journal of Environmental Management. 2021;302(Pt B):114088. https://doi.org/10.1016/j.jenvman.2021.114088
- 71. Amaral EJ, Pereira LMS, Lorençon E, Poggere GC, Agustini MAB, Edwiges T. Valorization of biowastes through pre-composting followed by vermicomposting with the addition of effective microorganisms. International Journal of Environmental Research. 2025;19(1):9.
- 72. Ejileugha C, Onyegbule UO, Osuoha JO. Use of additives in composting promotes passivation and reduction in bioavailability of heavy metals (HMs) in compost. Reviews of Environmental Contamination and Toxicology. 2024;19(1). https://doi.org/10.1007/s41742-024-00689-0
- 73. Tiong YW, Sharma P, Xu S, Bu J, An S, Foo JBL, et al. Enhancing sustainable crop cultivation: the impact of renewable soil amendments and digestate fertilizer on crop growth and nutrient composition. Environmental Pollution. 2024;342:123132. https://doi.org/10.1016/j.envpol.2023.123132
- 74. Xu M, Sun H, Chen E, Yang M, Wu C, Sun X, et al. From waste to wealth: innovations in organic solid waste composting. Environmental Research. 2023;229:115977. https://doi.org/10.1016/j.envres.2023.115977
- 75. Mhamdi R, Trabelsi D. The rise of the worm: bibliometric insights into the growing significance of vermicomposting for sustainable agriculture and environmental management. International Journal of Recycling of Organic Waste in Agriculture. 2025. https://doi.org/10.57647/ijrowa-md30-c35t
- 76. Mohite DD, Chavan SS, Jadhav VS, Kanase T, Kadam M, Singh AS. Vermicomposting: a holistic approach for sustainable crop production, nutrient-rich biofertilizer and environmental restoration. Discover Sustainability. 2024;5(1). https://doi.org/10.1007/s43621-024-00245-y
- 77. Gazi A, Maity A, Khatua N, Sengupta S, Kundu S, Sarkar T. Effect of vermicompost on soil quality and crop productivity. International Journal of Agriculture Extension and Social Development. 2024;7:13–23. https://doi.org/10.33545/26180723.2024.v7.i4sa.517
- 78. Pereira MMA, Moraes LC, Mogollón MCT, Borja CJF, Duarte M, Buttrós VHT, et al. Cultivating biodiversity to harvest sustainability: vermicomposting and inoculation of microorganisms for soil preservation and resilience. Agronomy. 2023;13(1):103. https://doi.org/10.3390/agronomy13010103
- 79. Rahman M, Hajam YA. Selection and evaluation of optimal medium for Eisenia fetida in sustainable waste recycling. Discover Animals. 2024;1(1):20. https://doi.org/10.1007/s44338-024-00021-2
- 80. Vaidyanathan VK, Venkataraman S, Kumar PS, Rajendran DS, Saikia K, Rathankumar AK, et al. Mycoremediation of lignocellulosic biorefinery sludge: a reinvigorating approach for organic contaminants remediation with simultaneous production of lignocellulolytic enzyme cocktail. Bioresource Technology. 2022;351:127012. https://doi.org/10.1016/j.biortech.2022.127012
- 81. Ariffin H, Ahmed OH, Marsal CJ. Food wastes for enhancing soil and crop productivity in tropical acid soils. Pertanika Journal of Tropical Agricultural Science. 2025;48(2). https://doi.org/10.47836/pjtas.48.2.10
- 82. Vaithyanathan VK, Cabana H. Integrated biotechnology management of biosolids: sustainable ways to produce value-added products. Frontiers in Water. 2021;3:729679. https://doi.org/10.3389/frwa.2021.729679
- 83. Cheng D, Liu Y, Ngo HH, Guo W, Chang SW, Nguyen DD, et al. A review on application of enzymatic bioprocesses in animal wastewater and manure treatment. Bioresource Technology. 2020;313:123683. https://doi.org/10.1016/j.biortech.2020.123683
- 84. Nguyen VK, Chaudhary DK, Dahal RH, Trinh NH, Kim J, Chang SW, et al. Review on pretreatment techniques to improve anaerobic digestion of sewage sludge. Fuel. 2021;285:119105. https://doi.org/10.1016/j.fuel.2020.119105
- 85. Caballero Jiménez P, Ágabo García C, Solera R, Parrado Rubio J, Pérez M. Eco-energetic management of activated sludge derived from slaughterhouse wastewater treatment: pretreatments for enhancing biogas production under anaerobic conditions. Sustainable Energy & Fuels. 2020;4(10):5072–9. https://doi.org/10.1039/D0SE00992J
- 86. Vu HP, Nguyen LN, Zdarta J, Jesionowski T, Nghiem LD. Valorizing agricultural residues as biorefinery feedstocks: current advancements and challenges. In: Clean Energy and Resources Recovery. Elsevier; 2021. p. 25–48. https://doi.org/10.1016/B978-0-323-85223-4.00021-X
- 87. Prado-Acebo I, Cubero-Cardoso J, Lu-Chau T, Eibes G. Integral multi-valorization of agro-industrial wastes: a review. Waste Management. 2024;183:42–52. https://doi.org/10.1016/j.wasman.2024.05.001
- 88. Petridi A, Fragkouli D-N, Mejias L, Paredes L, Bistue M, Boukouvalas C, et al. Assessing the overall sustainability performance of the meat processing industry before and after wastewater valorization interventions: a comparative analysis. Sustainability. 2024;16(22):9811. https://doi.org/10.3390/su16229811
- 89. Ogbu CC, Okey SN. Agro-industrial waste management: the circular and bioeconomic perspective. In: Agricultural Waste—New Insights. 2023. https://doi.org/10.5772/intechopen.109181
- 90. Cucina M, De Nisi P, Sordi S, Adani F. Sewage sludge as N-fertilizers for crop production enabling the circular bioeconomy in agriculture: a challenge for the new EU Regulation 1009/2019. Sustainability. 2021;13(23):13165. https://doi.org/10.3390/su132313165
- 91. Melo W, Delarica D, Guedes A, Lavezzo L, Donha R, De Araújo A, et al. Ten years of application of sewage sludge on tropical soil: a balance sheet on agricultural crops and environmental quality. Science of the Total Environment. 2018;643:1493–501. https://doi.org/10.1016/j.scitotenv.2018.06.254
- 92. Tejada M, Rodríguez-Morgado B, Gómez I, Franco-Andreu L, Benítez C, Parrado J. Use of biofertilizers obtained from sewage sludges on maize yield. European Journal of Agronomy. 2016;78:13–9. https://doi.org/10.1016/j.eja.2016.04.014
- 93. De Barros JA, Stamford N, Da Silva EVN, Da Costa D, De Freitas MI, Da Silva Oliveira W, et al. Biofertilizer combined with sewage sludge increases the quality of soil cultivated with banana. Journal of Soil Science and Plant Nutrition. 2023;23:6273–83. https://doi.org/10.1007/s42729-023-01483-1
- 94. Ragonezi C, Nunes N, Oliveira M, De Freitas J, Ganança J, De Carvalho M. Sewage sludge fertilization—a case study of sweet potato yield and heavy metal accumulation. Agronomy. 2022;12(8):1902. https://doi.org/10.3390/agronomy12081902
- 95. Carraturo F, Siciliano A, Giordano A, Di Capua F, Barone F, Casaletta E, et al. Ecotoxicological assessment of waste-derived organic fertilizers and long-term monitoring of fertilized soils using a multi-matrix and multi-species approach. Science of the Total Environment. 2024;912:169341. https://doi.org/10.1016/j.scitotenv.2023.169341
- 96. Rumky J, Visigalli S, Turolla A, Gelmi E, Necibi C, Gronchi P, et al. Electro-dewatering treatment of sludge: assessment of the influence on relevant indicators for disposal in agriculture. Journal of Environmental Management. 2020;268:110689. https://doi.org/10.1016/j.jenvman.2020.110689
- 97. Alayu E, Leta S, Aragaw T. Characterization of the physicochemical and biological properties of Kombolcha brewery wastewater treatment plant biosolid in relation to agricultural uses. 2018;3:1–7. https://doi.org/10.4172/2475-7675.1000154
- 98. Badza T, Tesfamariam E, Cogger C. Agricultural use suitability assessment and characterization of municipal liquid sludge: based on South Africa survey. Science of the Total Environment. 2020;721:137658. https://doi.org/10.1016/j.scitotenv.2020.137658
- 99. Sundha P, Basak N, Rai A, Chandra P, Bedwal S, Yadav G, et al. Characterization and ecotoxicological risk assessment of sewage sludge from industrial and non-industrial cities. Environmental Science and Pollution Research. 2023;30:116567–83. https://doi.org/10.1007/s11356-022-21648-2
- 100. Wei C, Liu L, Yi W, Yu R, Xu Y, Zeng S. Characteristics of nutrients and heavy metals release from sewage sludge biochar produced by industrial-scale pyrolysis in the aquatic environment and its potential as a slow-release fertilizer and adsorbent. Journal of Environmental Management. 2024;366:121871. https://doi.org/10.1016/j.jenvman.2024.121871
- 101. Martínez-Gallardo M, Jiménez R, Suárez-Estrella F, Toribio A, Estrella-González M, Mira-Urios M, et al. Cataloging olive oil mill wastewater sludge based on toxicological profiles and functional microbial diversity. Science of the Total Environment. 2025;976:179348. https://doi.org/10.1016/j.scitotenv.2025.179348
- 102. Glauoi GEME, Hayany BE, Fels E, Faiz AE, Ezzariai A, Rihani M, et al. Physico-chemical and spectroscopy assessment of sludge biodegradation during semi-industrial composting under semi-arid climate. Waste and Biomass Valorization. 2020;11:1217–28. https://doi.org/10.1007/s12649-018-0442-3
- 103. Leil IAE, Duhere IAYE. Evaluation of biosolids compost maturity as fertilizing substance for soil. 2020:1. https://doi.org/10.37376/1570-000-034-004
- 104. Huang D, Gao Y, Zhang L, Zhang R, Wu Y, Guan H, et al. Enhancing waste management and nutrient recovery: preparation of N slow-release fertilizer using sewage sludge and its release behavior, effects on ryegrass (Lolium perenne L.) growth. Biochemical Engineering Journal. 2025;216:109664. https://doi.org/10.1016/j.bej.2025.109664
- 105. Yang L, Zhao J, Huang Q, Wang J, Xu C, Xu Y, et al. Release behavior of fertilizers and heavy metals from iron-loaded sludge biochar in the aqueous environment. Environmental Pollution. 2023;334:122163. https://doi.org/10.1016/j.envpol.2023.122163
- 106. Kulhánek M, Balík J, Černý J, Vašák F, Shejbalová Š. Influence of long-term fertilizer application on changes of the content of Mehlich-3 estimated soil macronutrients. Plant Soil and Environment. 2014;60(4):151–7. https://doi.org/10.17221/930/2013-PSE
- 107. Zhou X-M, Zhang B, Li L. From waste to resource: assessing the feasibility of municipal sludge as a fertilizer from a soil and microbial perspective. Chemical Engineering Journal Advances. 2024;19:100630. https://doi.org/10.1016/j.ceja.2024.100630
- 108. Hao J, Li B, Tan J, Zhang Y, Gu X, Wang S, et al. Double advantages of nutrients and biostimulants derived from sewage sludge by alkaline thermal hydrolysis process for agricultural use: quality promotion of soil and crop. Advanced Science. 2024;11(13):e2307793. https://doi.org/10.1002/advs.202307793
- 109. Wollmann I, Gauro A, Müller T, Möller K. Phosphorus bioavailability of sewage sludge-based recycled fertilizers. Journal of Plant Nutrition and Soil Science. 2018;181:158–66. https://doi.org/10.1002/jpln.201700111
- 110. Ndoung OCN, Souza L, Fachini J, Leão T, Sandri D, Figueiredo C. Dynamics of potassium released from sewage sludge biochar fertilizers in soil. Journal of Environmental Management. 2023;346:119057. https://doi.org/10.1016/j.jenvman.2023.119057
- 111. Fachini J, Figueiredo C, Vale A. Assessing potassium release in natural silica sand from novel K-enriched sewage sludge biochar fertilizers. Journal of Environmental Management. 2022;314:115080. https://doi.org/10.1016/j.jenvman.2022.115080
- 112. Nesterov D, Barrera-Martínez I, Martínez-Sánchez C, Sandoval-González A, Bustos E. Approaching the circular economy: biological, physicochemical and electrochemical methods to valorize agro-industrial residues, wastewater and industrial wastes. Journal of Environmental Chemical Engineering. 2024;12(5):113335. https://doi.org/10.1016/j.jece.2024.113335
- 113. Kumar V, Verma P. Pulp-paper industry sludge waste biorefinery for sustainable energy and value-added products development: a systematic valorization towards waste management. Journal of Environmental Management. 2024;352:120052. https://doi.org/10.1016/j.jenvman.2024.120052
- 114. Ammar E, Maury H, Morin L, Sghir A. Environmental, economic and ethical assessment of the treated wastewater and sewage sludge valorization in agriculture. In: Sustainable Agriculture Reviews. 2020. p. 49–78. https://doi.org/10.1007/698_2020_606
- 115. Moktadir MA, Ren J, Zhou J. A systematic review on tannery sludge to energy route: current practices, impacts, strategies and future directions. Science of the Total Environment. 2023;901:166244. https://doi.org/10.1016/j.scitotenv.2023.166244
- 116. Woo DCY, Goh Q, Poh P, Chew I. A techno-economic analysis of sewage sludge valorization for carbon emission reduction. Biomass Conversion and Biorefinery. 2023;13:13591–604. https://doi.org/10.1007/s13399-022-02922-2
- 117. Rajaniemi K, Tuomikoski S, Lassi U. Electrocoagulation sludge valorization-a review. Resources. 2021;10(12):127. https://doi.org/10.3390/resources10120127
- 118. Fini EH, Kazemi M, Poulikakos L, Lazorenko G, Akbarzade V, Lamanna A, et al. Perspectives on innovative non-fertilizer applications of sewage sludge for mitigating environmental and health hazards. Communications Engineering. 2024;3(1):178. https://doi.org/10.1038/s44172-024-00298-x
- 119. Chen B, Zeng H, Yang F, Yang Y, Qiao Z, Zhao X, et al. Functional biochar as sustainable precursors to boost the anaerobic digestion of waste activated sludge from a circular economy perspective: a review. Biochar. 2024;6(1):60. https://doi.org/10.1007/s42773-024-00345-y
- 120. Bakan B, Bernet N, Bouchez T, Boutrou R, Choubert J-M, Dabert P, et al. Circular economy applied to organic residues and wastewater: research challenges. Waste and Biomass Valorization. 2022;13(2):1267–76. https://doi.org/10.1007/s12649-021-01549-0
- 121. Binder PM, Frison N, Guerra-Gorostegi N, Hidayat I, Paredes L, Llenas L, et al. Innovative multiple resource recovery pathways from EBPR wastewater treatment-derived sludge. Biomass Conversion and Biorefinery. 2023;13(18):16421-40. https://doi.org/10.1007/s13399-023-03849-y
- 122. Li Y, Campos LC, Hu Y. Microwave pretreatment of wastewater sludge technology-a scientometric-based review. Environmental Science and Pollution Research. 2024;31(18):26432–51. https://doi.org/10.1007/s11356-024-32931-9
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